NZ206845A - 5-(2-alkoxyphenyl)-thiazolidinedione derivatives and pharmaceutical compositions - Google Patents
5-(2-alkoxyphenyl)-thiazolidinedione derivatives and pharmaceutical compositionsInfo
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- NZ206845A NZ206845A NZ206845A NZ20684584A NZ206845A NZ 206845 A NZ206845 A NZ 206845A NZ 206845 A NZ206845 A NZ 206845A NZ 20684584 A NZ20684584 A NZ 20684584A NZ 206845 A NZ206845 A NZ 206845A
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- C—CHEMISTRY; METALLURGY
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- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
- A61P3/08—Drugs for disorders of the metabolism for glucose homeostasis
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
- A61P3/08—Drugs for disorders of the metabolism for glucose homeostasis
- A61P3/10—Drugs for disorders of the metabolism for glucose homeostasis for hyperglycaemia, e.g. antidiabetics
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
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- C07C43/02—Ethers
- C07C43/20—Ethers having an ether-oxygen atom bound to a carbon atom of a six-membered aromatic ring
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- C07C45/51—Preparation of compounds having >C = O groups bound only to carbon or hydrogen atoms; Preparation of chelates of such compounds by pyrolysis, rearrangement or decomposition
- C07C45/511—Preparation of compounds having >C = O groups bound only to carbon or hydrogen atoms; Preparation of chelates of such compounds by pyrolysis, rearrangement or decomposition involving transformation of singly bound oxygen functional groups to >C = O groups
- C07C45/513—Preparation of compounds having >C = O groups bound only to carbon or hydrogen atoms; Preparation of chelates of such compounds by pyrolysis, rearrangement or decomposition involving transformation of singly bound oxygen functional groups to >C = O groups the singly bound functional group being an etherified hydroxyl group
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- C07C59/40—Unsaturated compounds
- C07C59/58—Unsaturated compounds containing ether groups, groups, groups, or groups
- C07C59/64—Unsaturated compounds containing ether groups, groups, groups, or groups containing six-membered aromatic rings
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- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D277/00—Heterocyclic compounds containing 1,3-thiazole or hydrogenated 1,3-thiazole rings
- C07D277/02—Heterocyclic compounds containing 1,3-thiazole or hydrogenated 1,3-thiazole rings not condensed with other rings
- C07D277/20—Heterocyclic compounds containing 1,3-thiazole or hydrogenated 1,3-thiazole rings not condensed with other rings having two or three double bonds between ring members or between ring members and non-ring members
- C07D277/32—Heterocyclic compounds containing 1,3-thiazole or hydrogenated 1,3-thiazole rings not condensed with other rings having two or three double bonds between ring members or between ring members and non-ring members with hetero atoms or with carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals, directly attached to ring carbon atoms
- C07D277/34—Oxygen atoms
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Abstract
A series of 5-(2-alkoxyphenyl)thiazolidinediones and pharmaceutically acceptable salts thereof useful as hypoglycemic agents, aldose reductase inhibitors and as therapeutic agents for the treatment of chronic diabetic complications; intermediates therefore; and processes for preparation of said compounds.
Description
<div class="application article clearfix" id="description">
<p class="printTableText" lang="en">New Zealand Paient Spedficaiion for Paient Number £06845 <br><br>
206845 <br><br>
Priority Date(s): .. J, 1.-, . <br><br>
Complete Specification Filed: (£. \ (. \ tAf Class: T. <br><br>
Publication Date: .... !???, P.O. Journal, No: . <br><br>
NEW ZEALAND <br><br>
NO DRAWINGS ?atentsact- 1953 <br><br>
No.: <br><br>
Date; 16 January 1984 <br><br>
COMPLETE SPECIFICATION <br><br>
TITLE OF INVENTION: <br><br>
"ALDOSE REDUCTASE INHIBITING 5-(2-ALKOXYPHENYL) <br><br>
THIAZOLIDINEDIONES" <br><br>
k/We, Pfizer Inc, a corporation organized under the laws of the state of Delaware, United States of America of 235 East 42nd Street, New York, State of New York, <br><br>
United States of America. <br><br>
hereby declare the invention for which ic/ we pray that a patent may be granted to2pK&/us, and the method by which it is to be performed, <br><br>
to be particularly described in and by the following statement: - <br><br>
(followed by page la) <br><br>
- 1 - <br><br>
i <br><br>
-1- <br><br>
206845 <br><br>
ALDOSE REDUCTASE INHIBITING 5-(2-ALKOXYPHENYL)THIAZOLIDINEDIONES <br><br>
10 <br><br>
15 <br><br>
20 <br><br>
O 30 <br><br>
This invention relates to novel 5-(2-alkoxy-phenyl)thiazolidinediones and to pharmaceutically acceptable salts thereof useful as hypoglycemic agents, inhibitors of aldose reductase and as therapeutic agents for the .treatment of chronic diabetic complications. <br><br>
Despite the widespread use of insulin and of the availability of a large number of synthetic hypoglycemic agents such as the sulfonylureas (e.g. chlorpropamide, tolbutamide, acetohexamide) and biguanides (e.g. phenformin), the search for improved hypoglycemic agents continues. More recently, efforts have been directed to controlling certain chronic complications of diabetes, such as diabetic cataracts, neuropathy and retinopathy. Such efforts have given rise to development of aldose reductase inhibitors, compounds which inhibit the activity of the enzyme aldose reductase which is primarily responsible for regulating reduction of aldoses to the corresponding polyols. In this way, unwanted accumulation of galactitol in the lens of galactosemia subjects and of sorbitol in the lens, kidney and peripheral nervous cord of various diabetic subjects is prevented or reduced. References which describe aldose reductase inhibitors are U.S. 3,821,383 - 1,3-dioxo-lH-benz[d,e] -isoquinoline-2(3H)—acetic acid and related compounds; U.S. 4,200,642 - spiro-oxazolidine-2,4-diones; U.S. 4,117,230; 4,130,714; 4,147,797; 4,210,756; 4,235,911 and 4,282,229, each of which describes certain spiro-hydantoins. U.i>. Patents 4367234, 433295? and 4342771 des-; cribe 5-(substituted phenyl)oxazclidine—2,4-diones a~ <br><br>
hypoglycemic agents. <br><br>
206845 <br><br>
-2- <br><br>
European Patent Application 33,617 published August 12, 1981 describes certain 5-(disubstituted phenyl)thiazolidine-2,4-diones which exhibit activity to control chronic diabetic complications. A variety of 5-(4-alkoxybenzyl)thiazolidine-2,4-diones having hypolipidemic and hypoglycemic activities are disclosed in European Patent Application 8203 published February 2 0, 1980. <br><br>
Sohda et al_. , Chem. Pharm. Bull. 30_, 3601-16 (19 82) report on the hypoglycemic and hypolipedemic properties of thiazolidine-2,4-diones having at the 5-position one or two substituents such as phenyl, heteryl or alkyl. Many of the same compounds are disclosed in U.S. Patent Specification No. 4387101. <br><br>
It has now been found that certain 5-(2-alkoxy-phenyl) thiazolidinedione-s of formula I below and pharmaceutically acceptable salts thereof are useful as hypoglycemic agents, aldose reductase inhibitors and as therapeutic agents for the prevention and/or alleviation of chronic diabetic complications. <br><br>
The present invention is concerned with compounds of the formula <br><br>
Y OR <br><br>
and the base salts thereof with pharmacologically acceptable cations, wherein <br><br>
R is alkyl having from one to four carbon atoms; <br><br>
X is fluoro,. chloro or bromo; and <br><br>
Y is hydrogen, chloro, lower alkyl or lower alkoxy. <br><br>
The preferred compounds are those wherein X is fluoro or chloro? Y is hydrogen or methyl, and R is methyl. <br><br>
Because of the acidic hydrogen atom in the thiazolidinedione ring of the compounds of formula I, salts can be formed with pharmaceutically acceptable cations by conventional methods. Thus, these salts may be readily prepared by treating the compound of formula I with an aqueous solution of the desired pharmaceutically acceptable cation and evaporating the resulting solution to dryness, preferably under reduced pressure. Alternatively, a lower alkanol solution of the compound of formula I may be mixed with an alkoxide of the desired metal and the solution subsequently evaporated fco dryness. Suitable pharmaceutical ly acceptable cations for this purpose include, but are not limited to, potassium, sodium, ammonium, calcium and magnesium, aluminum, benzathine, pipera-zine, N-mefchylglueamine and procaine. <br><br>
0 <br><br>
206845 <br><br>
-4- <br><br>
Also embraced by the present invention are pharmaceutical compositions comprising a pharmaceutical^ acceptable carrier and a compound of formula I in an amount effective for the treatment of hyper-5 glycemia and diabetes-associated complications, <br><br>
including diabetic cataracts, neuropathy and retinopathy. Preferred compounds for use in such pharmaceutical compositions are those having the preferred substituents as defined above. <br><br>
10 The present invention further includes a method of treatment of hyperglycemia and diabetes-associated complications, including diabetic cataracts, neuropathy and retinopathy, which comprises administering to a subject in need of treatment an effective amount 15 of a compound of formula I, preferably a compound having the preferred substituents as defined above. <br><br>
The novel compounds (IV) of this invention are prepared according to the reaction sequence presented below. <br><br>
v_>' <br><br>
"nh <br><br>
Z' "0^0 (I) <br><br>
Z-CHO <br><br>
(V) <br><br>
NaOH <br><br>
h2° <br><br>
(h2n)2c=s <br><br>
NaHSCU • * <br><br>
kcn <br><br>
(vi) <br><br>
OSi(CH3)3 Z-CH-CN <br><br>
oh z-ch-cooh (ii) <br><br>
SOCl. <br><br>
R ' OH <br><br>
CI <br><br>
Z-CH-COOR' (III) <br><br>
1. H^/H20 <br><br>
2. socl2 <br><br>
3. roh <br><br>
OH <br><br>
I <br><br>
■> Z-GH-CN (VII) <br><br>
Z = <br><br>
Y OR <br><br>
? R1 = (C1_4)alkyl <br><br>
306845 <br><br>
-6- <br><br>
A favored procedure comprises reaction of the appropriate alpha- ( 2-alkoxyphenyl )'-alpha-chloroacetic acid alkyl ester (III) with thiourea in a reaction- ' inert solvent, e.g. ethanol, isopropanol, sulfolane, at a temperature of 75° or higher. The 5-(2-alkoxyphenyl )-2-iminothiazolidin-4-one thus produced is then hydrolyzed with dilute aqueous acid, such as 2-6N HC1, in a solvent such as ethanol, to produce (IV) which is isolated by known procedures. <br><br>
The alpha-(2-alkoxyphenyl)-alpha-chloroacetic acid alkyl esters (III) required as starting materials are prepared by hydrolysis of the appropriate 5-(2-alkoxyphenyl)oxazolidine-2,4-dione (I) under alkaline conditions in a suitable solvent such as ethanol at or near the reflux temperature. The .hydrolysis reaction is usually complete in 2 to 4 hours. The alpha-(2-alkoxyphenyl)-alpha-hydroxy acetic acid (IT) is recovered by acidification of the reaction mixture and extraction of the desired product with, for example, ethyl acetate. <br><br>
The thus-obtained acid (II) is then reacted with thionyl chloride or POCl^ to produce the corresponding alpha-chloroacetic acid chloride derivative which is then esterified by reaction with the appropriate <br><br>
)alcohol to afford (III). <br><br>
Many of the 5-(2-alkoxyphenyl)oxazolidine-2,4-dione reactants are described in US Patent 4367234. <br><br>
Alternatively, the alpha-{2-alkoxyphenyl)-alpha-chloroacetic acid alkyl esters are prepared from the appropriate benzaldehyde (V). The procedure comprises conversion of the benzaldehyde to the cyanohydrin (VII) via the bisulfite adducfc which is reacted with cyanide in a two phase, aqueous-organic solvent 'system. In a modification of this procedure, the aldehyde is first converted to the trimethylsilyl cyanohydrin (VI) by reaction with trimethylsilyl-carbonitrile, in the presence of a catalytic amount of a Lewis acid, e.g., zinc iodide. A reaction inert solvent (e.g. methylene chloride, ether) is generally used when the aldehyde is a solid, but is optional when the aldehyde is a liquid. The temperature of the reaction is not critical, it being conveniently made up at reduced temperature (e.g. 0-25°C) and allowed to proceed at room temperature for a matter of hours or days, as necessary to achieve complete reaction. The trimethylsilyl ether is then hydrolyzed to cyanohydrin (VI), conveniently at reduced temperature (e.g. 0°C) in a two phase strong aqueous acid/organic solvent system. <br><br>
The cyanohydrin (VII) is conveniently hydrolyzed to the corresponding hydroxy acid by reaction with excess concentrated hydrochloric acid in formic acid, generally at the reflux temperature of the solvent system. Likewise the trimethylsilyl cyanohydrin may be hydrolyzed directly to the hydroxy acid by the above formic acid procedure. The hydroxy acid is isolated by known methods. It is converted to the alpha-chloro acetic acid alkyl ester (III) according to the procedure described above for converting (II) to (III). <br><br>
206845 <br><br>
-3- <br><br>
o <br><br>
10 <br><br>
15 <br><br>
20 <br><br>
25 30 <br><br>
The aldehydes (V) required for the above syntheses are broadly available either commercially, or by literature methods, such as those described in U.S. Patent <br><br>
The compounds of formula I and the pharmaceutical-ly acceptable salts thereof are useful as inhibitors prevention and alleviation) of chronic complications of diabetes, such as diabetic cataracts, retinopathy and neuropathy. They are administered alone or in combination with pharmaceutically acceptable carriers in single or multiple doses to a subject in need of treatment by a variety of conventional routes of administration, including oral, parenteral and topical, including ophthalmic. In general, these compounds will be administered orally or parenterally at dosages between about 0.25 and 25 mg/kg body weight of the subject to be treated -per day, preferably from about 1.0 to 10 mg/kg. <br><br>
Suitable pharmaceutical carriers include inert solid diluents or fillers, sterile aqueous solution and various organic solvents. The pharmaceutical compositions formed by combining the novel compounds of formula I and the pharmaceutically acceptable carriers are then readily administered in a variety of dosage forms such as tablets, powders, lozenges, <br><br>
syrups, injectable solutions and the like. These pharmaceutical compositions can, if desired, contain additional ingredients such as flavorings, binders, excipients and the like. Thus, for purposes of oral administration, tablets containing various excipients, disintegrants, binding agents and lubricating agents <br><br>
4367234. <br><br>
of the enzyme aldose reductase in the treatment (i.e. <br><br>
20 6&45 <br><br>
-9- <br><br>
can be used. Solid compositions of a similar type can also be employed as fillers in soft and hard filled gelatin capsules. Preferred materials for this include lactose or milk sugar and high molecular 5 weight polyethylene glycols. When aqueous suspensions or elixirs aire desired for oral administration, the essential active ingredient therein may be combined v, with various sweetening or flavoring agents, together with diluents such as water, ethanol, propylene 10 glycol, glyercine and combinations thereof. <br><br>
For parenteral administration, solutions of the novel compound of formula I in sesame or peanut oil, aqueous propylene glycol, or in sterile aqueous solution can be employed. Such aqueous solutions 15 should be suitably buffered if necessary and the liquid diluent first rendered isotonic with sufficient saline or glucose. These particular aqueous solutions are especially suitable for intravenous, intramuscular, subcutaneous and intraperitoneal administration. In 20 this connection, the sterile aqueous media employed are all readily available by standard techniques known to those skilled in the art. <br><br>
Preparations suitable for ophthalmic use, especially for treatment of diabetic cataracts, will contain a 25 compound of formula I or a pharmaceutically acceptable salt thereof in a concentration from about 0.1 to about 5% by weight, preferably from about 0.5 to about 2% in a pharmaceutically acceptable solution, suspension or ointment. Ophthalmic preparations, prepared 30 in accordance with conventional pharmaceutical practice, <br><br>
-10- <br><br>
will preferably be in the form of a sterile aqueous solution containing, if desired, additional ingredients, for example preservatives, buffers, tonicity agents, antioxidants and stabilizers, nonionic wetting or 5 clarifying agents, viscosity-increasing agents and the like. Regardless of the route of administration used, some variation in the concentration ranges specified herein will necessarily occur, depending on the particular compound used and the condition of the 10 person to be treated. In any event, the person responsible for administration will determine the appropriate dose for the individual subject. <br><br>
The activity of the compounds of the present invention as agents for the control of chronic diabetic 15 complications can be determined by a number of standard biological or pharmacological tests. Suitable tests include (1) measuring their ability to inhibit the enzyme activity of isolated aldose reductase; (2) measuring their ability to reduce or inhibit* 20 sorbitol accumulation in the sciatic nerve of acutely streptozotocinized (i.e. diabetic) rats; (3) measuring their ability to reverse already elevated sorbitol levels in the sciatic nerve and lens-of chronic streptozotocin-induced diabetic rats; (4) measuring 25 their ability to prevent or inhibit galactitol forma tion in the lense of acutely galactosemic rats; and (5) measuring their ability to delay cataract formation and reduce the severity of lens opacities in chronic galactosemic rats. Suitable experimental 30 procedures are described in U.S. Patent No. 3,821,383 <br><br>
and the references cited therein. <br><br>
m <br><br>
-11- <br><br>
The compounds of the present invention are readily adapted to clinical use as antidiabetic agents. The hypoglycemic activity required for this clinical use is defined by the glucose tolerance test 5 procedure which follows. Intact male albino rats are fasted approximately 18-24 hours, then weighed, <br><br>
numbered and recorded in groups of five or six as needed. Each group of animals is then dosed intra-peritoneally with glucose (one gram per kilogram) and 10 orally with either water (controls) or compound (at a level usually selected from the range 0.1 to 100 mg/kg). Blood glucose levels (mg/100 ml) are measured in tail blood samples over a period of 3 hours in both control and treated groups. With equivalent zero hour blood 15 glucose levels in control and treated groups, the % <br><br>
lowering of blood glucose at 0.5 hour, 1 hour, 2 hours and 3 hours is calculated as: <br><br>
[Control Blood Glucose] [Treated Blood Glucose! • 100% [Control Blood Glucose] <br><br>
Clinically useful hypoglycemic agents show activity in 20 this test. A blood glucose lowering of 9% or greater generally reflects statistically significant hypoglycemic activity in this test. <br><br>
They are clinically administered to mammals, including man, via either the oral or the parenteral 25 route. Administration by the oral route is preferred, <br><br>
being convenient and avoiding the possible pain and irritation of injection. However, in circumstances where the patient cannot swallow the medication, or absorption following oral administration is impaired, 30 as by disease or other abnormality, it is essential <br><br>
m <br><br>
-12- <br><br>
that the drug be administered parenterally. By either route, the dosage is in the range of about 0.25 to about 25 mg/kg body weight of the subject per day, preferably about 1.0 to about 10 mg/kg body weight per 5 day administered singly or as a divided dose. <br><br>
The reactions employed to prepare the compounds of this invention can generally be monitored by standard tic methods, employing commercially available plates. Suitable eluants are common solvents such as 10 chloroform, ethyl acetate or hexane or suitable combinations thereof which will differentiate starting materials, products, by-products, and in some cases intermediates. Applying these methods, which are well known in the art, will permit further improvement in 15 the methodology of the specific examples detailed hereinafter, e.g. the selection of more optimal reaction times and temperatures, as well as aid in the selection of optimal EProcesses. <br><br>
In the examples which follow, no effort was made 20 to optimize the yields of a given reaction. <br><br>
EXAMPLE 1 5—{6-Chloro-2-Methoxyphenyl)- <br><br>
Thiazolidine-2,4-Dione <br><br>
A mixture of methyl alpha-chloro-alpha-(6-chloro-2-methoxyphenyl)acetate (1.37 g, 5.5 mmoles), thiourea (0.84 g, 10.0 mmoles) and ethanol (10 ml) was refluxed for 16 hours. Concentrated hydrochloric acid (4 ml) was added to the mixture and refluxing continued for an additional 16 hours. An additional 2 ml of concentrated hydrochloric acid was added and the mixture refluxed for 16 more hours. The yellow solution was then cooled to room temperature and poured into 15 0 ml of water. The title product was isolated by extraction of the aqueous mixture with ethyl acetate (2 x 150 ml). The extract was washed with water (1 x 5 0 ml) and brine (1 x 5 0 ml), then dried (MgSO^) and concentrated ^in vacuo to a brown oil (0.91 g). Trituration of the oil in hexane (5 0 ml) gave a solid which was recrystallized from ethanolrwater (1:1) as a white solid, 0.0719 g. M.P. 195—197°C. <br><br>
y )}• '<* && ,-f <br><br>
-14- <br><br>
The compounds tabulated were prepared in like manner from the appropriate methyl alpha-chloro-alpha-(2-alkoxypheriyl)acetate reactant. <br><br>
^ NH <br><br>
K?' <br><br>
Ex. <br><br>
Reactant Z-CH(CI)COOCH, <br><br>
Product <br><br>
Z <br><br>
QMS <br><br>
X <br><br>
Y <br><br>
GMS <br><br>
MP (°C) <br><br>
2 <br><br>
6-F-2-OCH3-CgH3 <br><br>
1. 19 <br><br>
6—F <br><br>
H <br><br>
0.0723 <br><br>
127.0-128.5 <br><br>
3 <br><br>
5-Cl-2-OCH3-C6H3 <br><br>
1.00 <br><br>
5-Cl <br><br>
H <br><br>
0.3018 <br><br>
237-238 <br><br>
4 <br><br>
5-Cl-2-OCH3-3-CH3-CgH2 <br><br>
0.92 <br><br>
5-Cl <br><br>
CH3 <br><br>
0.032 <br><br>
160-163 <br><br>
-15- <br><br>
EXRMPLE 5 <br><br>
The sodium salts of the products of Examples 1-4 are. prepared by dissolving said compound in water containing an equivalent amount in moles of sodium hydroxide and then freeze-drying the. mixture. In this way, the desired alkali metal salt of the thiazolidinedione is obtained in the form of an amorphous powder which, is freely soluble in water. <br><br>
-16- <br><br>
PREPARATIQN A Methyl alpha-Chl'oro-alpha- C_6-Chloro-2-MethoxyphenyllAcetate A mixture of 5-C6-chloro-2-methoxyphenylloxazo-lidine-2,4-diona C2.2G g, 9.10 iranolesl, aqueous sodium hydroxide (15.4 ml of 6N, 32.3 mmolesl and ethanol C.6 ml) was heated in a 9Q°C oil bath, for 24 hours, <br><br>
then stirred at room temperature for 48 hours. The black reaction mixture was then poured into 150 ml of water and the pH of the aqueous mixture adjusted to pH 2 by addition of IN HC1. Extraction of the acidified aqueous solution with diethyl ether C2 x 150 mil, followed by washing the combined extract with brine (2 x 200 mil, drying (MgSO^J. and concentration, of the dried extract gave a brown oil. Trituration of the oil with hexane (2 x 100 ml) gave 0.69 g of a tan solid; m.p. 139.5-142°C, the acid form of the title compound. Additional acid was isolated by extraction of the acidified aqueous solution with ethyl acetate (2 x 200 ml). The pooled ethyl acetate extracts were washed with brine (1 x 100 ml), dried (MgSO^) and concentrated to an oil. Trituration of the oil with hexane (2 x 100 ml) gave a white solid (0.75 g). <br><br>
The combined acid product (1.40 g, 6.46 mmoles) was reacted with thionyl chloride (.5.0 ml) at 30°C for five hours after which the excess thionyl chloride was stripped under reduced pressure. Methanol C5.0 mil was added and the red solution stirred at ambient temperature for ten minutes. Water C50 mil was then added and the resulting solution extracted with ethyl acetate (.2 x 10.0 mlL. The extracts were combined, <br><br>
-17- <br><br>
206845 <br><br>
washed successively with. 5% sodium bicarbonate solution (2 x 50 mil, water CL x 50 mil and brine Q. x 50 mil, and then dried CMgSO^l. Concentration of the dried extract gave the title product as a brown oil 5 C.1.37 gl. It was used a,s is. <br><br>
By means of the above procedures, the. compounds tabulated below were prepared as Brown oils from the appropriate 5-(2-alkoxyphenylIoxazolidine-2,4-diona. They were used directly without purification to 10 prepare the 5- C2-alRoxyphenyll thiazolidine-2,4-diones of Examples 2 and 3: <br><br>
methyl alpha-chldro-alpha-C6-fluoro-2-methoxy-phenyl1acetate methyl alpha-chloro-alpha-C5-chloro-2-methoxy-15 phenyl)acetate. <br><br>
5 <br><br>
-18- <br><br>
PREPARATION B 2-Methyl-4-<:hlQroanis:ole To a suspension of 2-raethoxY-5-chlorobenzaldehyde (34.5 g, Q.202 omolel in Bis- f2-h.ydroxye.thyl I ether 5 (.225 mil was added hydrazine, hydrate (JL7.7 g, Q.353 mole! and the mixture heated on a 125PC oil bath for 15 minutes. It was then cooled to 50°C and powdered potassium hydroxide C15.5 g of 85%, Q.24 mole! added. The mixture was heated on a 15"5°C oil bath, for 3Q 10 minutes. After it had cooled to room temperature it was poured into water C6Q0 mil and the aqueous solution acidified by addition of 6N HC1. Carbon tetrachloride (4 x 100 ml), extractions of the acid solution, followed by washing the pooled extracts with brine (JL x 100 ml) , 15 drying (MgSO^l and concentration in vacuo gave a clear viscous oil which crystallized upon addition of a small volume of petroleum ether and chilling in an ice bath. The white crystals were filtered and dried in vacuo. Yield = 24.7 g (78%); m.p. 35-37°C. <br><br>
o <br><br>
206B4 5 <br><br>
-19- <br><br>
PREPARA.TION C 5-Chloro-2-Methoxy-3-Meth.yibenzaidehyde Titanium tetrachloride (21.6 g, 0.114 mole J. was added to a solution of 2-methyl-4-chloroanisole (2 <3r Q.057 mole), in methylene chloride at Q"C. Then, 1,1^ dichloromethyl methyl ether C7.24 g, 0.063 mole! was added dropwise over a three minute period and the reaction mixture stirred at Q°C for 30. minutes. The reaction was quenched by carefully pouring it into water C600 mil. The organic layer was separated and the aqueous phase extracted with methylene chloride (2 x 10Q ml).. The combined organic layer and extracts was washed with brine, dried (MgS04l and concentrated under reduced pressure to a pale yellow solid C10.1 gl. <br><br>
The crude product was purified by column chromatography in an 80 mm diameter flash column packed with 10" of 230-400 mesh silica gel. Elution of the column with 90 hexane/10 ether gave the title product C3.65 g); m.p. 92-94°C. <br><br>
t06§4 <br><br>
-20- <br><br>
PREPARATION D alpha-Hydroxy- (2-Methoxy—3-Methyi-5-Chi orobenz y 1:1cyanide To a solution of sodium Bisulfite C676 mg, 6.50 mmoles) in water C6 mil at 60 "C was- added S-chioro^-methoxy-3-methylbenzaldehyde (10 g, 5.42 mmoles I. The mixture was stirred for one hour, cooled to Q°C, and ether C6.mlL added. Sodium cyanide C292 rug, 5.96 mmoles). in water C6 ml) was added to the reaction mixture dropwise with stirring. The reaction was stirred for two hours during which time it was allowed to reach room temperature. The ether layer was separated, and the aqueous phase extracted with ether (2 x 50 ml). The combined ether extracts were dried (MgS04) and concentrated to give 970 mg (84%) of the cyanohydrin product which was used directly for preparing the corresponding acid. <br><br></p>
</div>
Claims (12)
1. A compound selected from the group consisting of aryl thiazolidinedione derivatives of the formula:<br><br> and the base salts thereof with pharmaceutically acceptable cations, wherein<br><br> R is alkyl having from one to four carbon atoms;<br><br> X is fluoro, chloro or bromo; and<br><br> Y is hydrogen, chloro, lower (C1-6) alkyl or lower (cl-6) alkoxy.<br><br>
2. A compound as claimed in claim 1 wherein R is alkyl having from one to four carbon atoms, X is . fluoro and Y is hydrogen.<br><br>
3. A compound as claimed in claim 1 wherein R is alkyl having from one to four carbon atoms, X is chloro and Y is hydrogen.<br><br>
4. A compound as claimed in claim 1 wherein R is alkyl having from one to four carbon atoms, X is chloro and Y is lower alkyl (as defined in Claim 1).<br><br>
5. A compound as claimed in claim 1 wherein R is alkyl having from one to four carbon atoms, X is fluoro and Y is lower alkyl (as defined in Claim 1).<br><br>
6. 5-C6-Fluoro-2-methoxyphenylIthiazolidine-2,4-dione.<br><br> 1.<br><br> 2°6845<br><br> -23-<br><br>
7. 5- C.6 -Chloro- 2 -methoxyphenyl 1 thiazolidine-2,4-dione.<br><br>
8. 5-C5-Chloro-2-methoxyphenyl1thiazolidine-2,4-dione.<br><br>
9. 5- C5-ChlorO'-2-methQxy-3-methylphenyl 1-thiazolidine-2,4-dione.<br><br>
10. A pharmaceutical composition comprising a pharmaceutically acceptable carrier and a compound of claim 1.<br><br>
11. A compound is claimed in any one claim 1 to 9 substantially as hereinbefore described with reference to any example thereof.<br><br>
12. A composition is claimed in claim 10 substantially as hereinbefore described with reference to any example thereof.<br><br> ;ated this \t> day iv&m-<br><br> A. J. PARK & SON R QP- •<br><br> •ents fob the appl.1cawts.<br><br> </p> </div>
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US45868483A | 1983-01-17 | 1983-01-17 |
Publications (1)
Publication Number | Publication Date |
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NZ206845A true NZ206845A (en) | 1986-09-10 |
Family
ID=23821708
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
NZ206845A NZ206845A (en) | 1983-01-17 | 1984-01-16 | 5-(2-alkoxyphenyl)-thiazolidinedione derivatives and pharmaceutical compositions |
Country Status (26)
Country | Link |
---|---|
EP (1) | EP0117035B1 (en) |
JP (1) | JPS59137474A (en) |
KR (1) | KR870001267B1 (en) |
AT (1) | ATE45574T1 (en) |
AU (1) | AU539921B2 (en) |
CA (1) | CA1233470A (en) |
CS (1) | CS241149B2 (en) |
DD (1) | DD216012A5 (en) |
DE (1) | DE3479419D1 (en) |
DK (1) | DK17984A (en) |
EG (1) | EG16563A (en) |
ES (1) | ES8506663A1 (en) |
FI (1) | FI840155A (en) |
GR (1) | GR79763B (en) |
GT (1) | GT198400006A (en) |
HU (1) | HU191265B (en) |
IE (1) | IE56842B1 (en) |
IL (1) | IL70690A (en) |
NO (1) | NO162462C (en) |
NZ (1) | NZ206845A (en) |
PH (1) | PH18882A (en) |
PL (1) | PL142152B1 (en) |
PT (1) | PT77958B (en) |
SU (1) | SU1189341A3 (en) |
YU (1) | YU43336B (en) |
ZA (1) | ZA84305B (en) |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1986007056A1 (en) | 1985-05-21 | 1986-12-04 | Pfizer Inc. | Hypoglycemic thiazolidinediones |
GB8910639D0 (en) * | 1989-05-09 | 1989-06-21 | Beecham Group Plc | Novel compounds |
JPH04210683A (en) * | 1990-12-06 | 1992-07-31 | Terumo Corp | Thiazolidine-2,4-dione derivative and treating agent for diabetic complication containing the same derivative |
JP3053490B2 (en) * | 1991-02-25 | 2000-06-19 | 杏林製薬株式会社 | Thiazolidine-2,4-dione derivative, salt thereof and production method |
CA3053956C (en) * | 2017-03-03 | 2024-04-23 | Gilead Sciences, Inc. | Processes for preparing acc inhibitors and solid forms thereof |
Family Cites Families (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE2263296A1 (en) * | 1972-12-23 | 1974-06-27 | Bayer Ag | 4-Alkyl-thiazol-2-ones - lipid and cholesterol level reducing prepd from alpha-substd. carbonyl cpds |
JPS56104876A (en) * | 1980-01-24 | 1981-08-20 | Takeda Chem Ind Ltd | Thiazolidine derivative |
JPS5728075A (en) * | 1980-07-29 | 1982-02-15 | Takeda Chem Ind Ltd | Thiazolidine derivative |
AU6610081A (en) * | 1980-01-24 | 1981-07-30 | Senju Pharmaceutical Co., Ltd. | Thiazolidine derivatives |
JPS5728073A (en) * | 1980-07-29 | 1982-02-15 | Takeda Chem Ind Ltd | Inhibitor for aldose reducing enzyme |
JPS57123175A (en) * | 1981-01-26 | 1982-07-31 | Takeda Chem Ind Ltd | Preparation of thiazolidine derivative |
-
1984
- 1984-01-11 AT AT84300155T patent/ATE45574T1/en active
- 1984-01-11 EP EP84300155A patent/EP0117035B1/en not_active Expired
- 1984-01-11 DE DE8484300155T patent/DE3479419D1/en not_active Expired
- 1984-01-12 GR GR73500A patent/GR79763B/el unknown
- 1984-01-13 PT PT77958A patent/PT77958B/en unknown
- 1984-01-13 GT GT198400006A patent/GT198400006A/en unknown
- 1984-01-13 CA CA000445291A patent/CA1233470A/en not_active Expired
- 1984-01-16 SU SU843692005A patent/SU1189341A3/en active
- 1984-01-16 PL PL1984245745A patent/PL142152B1/en unknown
- 1984-01-16 ES ES528887A patent/ES8506663A1/en not_active Expired
- 1984-01-16 NO NO840144A patent/NO162462C/en unknown
- 1984-01-16 ZA ZA84305A patent/ZA84305B/en unknown
- 1984-01-16 HU HU84149A patent/HU191265B/en unknown
- 1984-01-16 YU YU61/84A patent/YU43336B/en unknown
- 1984-01-16 IE IE79/84A patent/IE56842B1/en not_active IP Right Cessation
- 1984-01-16 DK DK17984A patent/DK17984A/en not_active Application Discontinuation
- 1984-01-16 NZ NZ206845A patent/NZ206845A/en unknown
- 1984-01-16 IL IL70690A patent/IL70690A/en unknown
- 1984-01-16 FI FI840155A patent/FI840155A/en not_active Application Discontinuation
- 1984-01-16 DD DD84259419A patent/DD216012A5/en unknown
- 1984-01-16 KR KR1019840000150A patent/KR870001267B1/en not_active IP Right Cessation
- 1984-01-16 AU AU23287/84A patent/AU539921B2/en not_active Ceased
- 1984-01-17 PH PH30115A patent/PH18882A/en unknown
- 1984-01-17 JP JP59006217A patent/JPS59137474A/en active Granted
- 1984-01-17 CS CS84385A patent/CS241149B2/en unknown
- 1984-01-17 EG EG32/84A patent/EG16563A/en active
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